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In der vorliegenden Arbeit wird das Wachstums- und Zelltodverhalten von Tumoren des zentralen Nervensystems untersucht. Des Weiteren wird die Expression verschiedener Apoptose-assoziierter Faktoren in den Präparaten analysiert und mit Normalkontrollen verglichen. Es zeigt sich, dass Apoptose von Tumorzellen aller untersuchter Hirntumore und Malignitätsgrade vollzogen werden kann. Die Rate apoptotischer Zellen ist jedoch sehr variabel und korreliert nicht mit dem Malignitätsgrad der Tumore. Auch besteht keine Korrelation zwischen der Apoptose- und der Proliferationsrate. Die Ergebnisse legen insgesamt nahe, dass die Apoptoserate nicht als Marker für die Malignität von Tumoren des zentralen Nervensystems verwendet werden kann. Auch unter Einbeziehung Apoptose-assoziierter Faktoren ist eine Gradifikation der Tumore hinsichtlich der Malignität nicht möglich. So unterscheiden sich z.B. atypische (WHO-II) und anaplastische (WHO-III) Meningiome quantitativ und qualitativ nicht signifikant voneinander. Es können ebenfalls keine signifikanten Unterschiede hinsichtlich der Expression der untersuchten Apoptose-assoziierten Faktoren, sowie der Apoptose- und Proliferationsraten zwischen Medulloblastomen und primitiven neuroektodermalen Tumoren (PNETs) festgestellt werden. Dies spricht dafür, dass sich diese Tumore lediglich bezüglich ihrer Lokalisation im zentralen Nervensystem unterscheiden. Die Analyse der Apoptose-assoziierten Faktoren zeigt, dass alle untersuchten Faktoren grundsätzlich in allen untersuchten Tumoren vorkommen, während die Normalkontrollen diese Faktoren nicht exprimieren. Der Vollzug der Apoptose findet jedoch nicht in diesem Maße statt, da die Apoptoserate der Tumore (markiert durch TUNEL) stets wesentlich geringer ist als die Expressionsraten der Apoptose-assoziierten Faktoren. Es ist davon auszugehen, dass entdifferenzierte Tumorzellen entweder nur begrenzt in der Lage sind, ihr apoptotisches „Selbstzerstörungsprogramm“ in Gang zu setzen und zu Ende zu führen, oder, dass apoptosehemmende Mechanismen greifen. Um so interessanter wäre es, durch therapeutische Intervention Apoptose zu initiieren. Die Analyse der einzelnen Apoptose-assoziierten Faktoren liefert Hinweise darauf, an welchen Stellen des apoptotischen Systems eine solche Intervention ansetzen könnte: Die hochmalignen WHO-IV-Tumore zeigen eine signifikante Hochregulation der Effektor-Caspasen-3 und -6. Die physiologischen Aktivierungsmechanismen dieser Caspasen z.B. durch Caspase-2 und TNFalpha scheinen in diesen hochmalignen Tumoren jedoch weniger eine Rolle zu spielen, da diese Faktoren hier nur in geringem Ausmaß exprimiert werden. Jedoch könnten modifizierte, per se aktive Caspase-3- und -6-Moleküle eine interessante therapeutische Option zur Behandlung maligner Tumore des zentralen Nervensystems darstellen. Zu beachten ist aber unter anderem, dass z.B. Glioblastome auch geringe Expressionsraten apoptotischer Faktoren im peritumoralen, mikroskopisch nicht infiltrierten Normalgewebe zeigen. Dies könnte für eine peritumorale Dysfunktion des Hirngewebes sprechen. Welche Rolle dies bei der Behandlung mit Apoptose-stimulierenden Agenzien spielt und wie spezifisch die Anwendung solcher Stimulanzien für Tumorgewebe wären, muss Gegenstand weiterer Studien sein. Die untersuchten WHO-II- und –III-Tumore zeigen eine Hochregulation vor allem von Faktoren des extrinsischen Apoptoseweges (z.B. TNFalpha). Die Expressionsraten von TNFalpha korrelieren signifikant mit dem WHO-Grad der untersuchten Tumore. Interessante therapeutische Optionen könnten hier zum einen die Aktivierung des extrinsischen Apoptoseweges über TNFalpha sein, zum anderen könnte man versuchen, eine direkte Aktivierung über modifizierte Effektor-Caspasen herbeizuführen. Insgesamt existieren verschiedene mögliche Angriffsorte innerhalb des apoptotischen Netzwerkes der Zelle für eine thepeutische Intervention bei Tumoren des zentralen Nervensystems. Die Komplexität des Kaskade-artigen Systems legt nahe, dass eine therapeutische Intervention möglichst an dessen Ende erfolgen sollte, um möglichst viele Stör- und Hemmfaktoren zu umgehen.
Heart valve disease is a major clinical problem worldwide. Cardiac valve development and homeostasis need to be precisely controlled. Hippo signaling is essential for organ development and tissue homeostasis, while its role in valve formation and morphology maintenance remains unknown. VGLL4 is a transcription cofactor in vertebrates and we found it was mainly expressed in valve interstitial cells at the post-EMT stage and was maintained till the adult stage. Tissue specific knockout of VGLL4 in different cell lineages revealed that only loss of VGLL4 in endothelial cell lineage led to valve malformation with expanded expression of YAP targets. We further semi-knockout YAP in VGLL4 ablated hearts, and found hyper proliferation of arterial valve interstitial cells was significantly constrained. These findings suggest that VGLL4 is important for valve development and manipulation of Hippo components would be a potential therapy for preventing the progression of congenital valve disease.
Rhabdomyosarcoma (RMS) cells have recently been reported to be sensitive to oxidative stress. Therefore, we investigated whether concomitant inhibition of the two main antioxidant defense pathways, that is, the thioredoxin (TRX) and the glutathione (GSH) systems, presents a new strategy to trigger cell death in RMS. In this study, we discover that GSH-depleting agents, i.e. γ-glutamylcysteine synthetase inhibitor, buthionine sulfoximine (BSO) or the cystine/glutamate antiporter inhibitor erastin (ERA), synergize with thioredoxin reductase (TrxR) inhibitor auranofin (AUR) to induce cell death in RMS cells. Interestingly, AUR causes accumulation of ubiquitinated proteins when combined with BSO or ERA, in line with recent reports showing that AUR inhibits the proteasome besides TrxR. Consistently, AUR/BSO or AUR/ERA cotreatment increases ubiquitination and expression of the short-lived proteins NOXA and MCL-1, accompanied by increased binding of NOXA to MCL-1. Notably, NOXA knockdown significantly rescues RMS cells from AUR/BSO- or AUR/ERA-induced cell death. In addition, AUR acts together with BSO or ERA to stimulate BAX/BAK and caspase activation. Of note, BSO or ERA abolish the AUR-stimulated increase in GSH levels, leading to reduced GSH levels upon cotreatment. Although AUR/BSO or AUR/ERA cotreatment enhances reactive oxygen species (ROS) production, only thiol-containing antioxidants (i.e., N-acetylcysteine (NAC), GSH), but not the non-thiol-containing ROS scavenger α-Tocopherol consistently suppress AUR/BSO- and AUR/ERA-stimulated cell death in both cell lines. Importantly, re-supply of GSH or its precursor NAC completely prevents AUR/ERA- and AUR/BSO-induced accumulation of ubiquitinated proteins, NOXA upregulation and cell death, indicating that GSH depletion rather than ROS production is critical for AUR/BSO- or AUR/ERA-mediated cell death. Thus, by demonstrating that GSH-depleting agents enhance the antitumor activity of AUR, we highlight new treatment options for RMS by targeting the redox homeostasis.
Background: The evasion of apoptosis is a hallmark of cancer. Understanding this process holistically and overcoming apoptosis resistance is a goal of many research teams in order to develop better treatment options for cancer patients. Efforts are also ongoing to personalize the treatment of patients. Strategies to confirm the therapeutic efficacy of current treatments or indeed to identify potential novel additional options would be extremely beneficial to both clinicians and patients. In the past few years, system medicine approaches have been developed that model the biochemical pathways of apoptosis. These systems tools incorporate and analyse the complex biological networks involved. For their successful integration into clinical practice, it is mandatory to integrate systems approaches with routine clinical and histopathological practice to deliver personalized care for patients.
Results: We review here the development of system medicine approaches that model apoptosis for the treatment of cancer with a specific emphasis on the aggressive brain cancer, glioblastoma.
Conclusions: We discuss the current understanding in the field and present new approaches that highlight the potential of system medicine approaches to influence how glioblastoma is diagnosed and treated in the future.
Secondary plant metabolites reveal numerous biological activities making them attractive as resource for drug development of human diseases. As the majority of cancer drugs clinically established during the past half century is derived from nature, cancer researchers worldwide try to identify novel natural products as lead compounds for cancer therapy. Natural products are considered as promising cancer therapeutics, either as single agents or in combination protocols, to enhance the antitumor activity of additional therapeutic modalities. Most natural compounds exert pleotrophic effects and modulate various signal transduction pathways. A better understanding of the complex mechanisms of action of natural products is expected to open new perspectives in coming years for their use alone or in combination therapies in oncology. Two major strategies to identify novel drug candidates from nature are the bioactivity-guided fractionation of medicinal plant extracts to isolate cytotoxic chemicals and the identification of small molecules inhibiting specific targets in cancer cells. In the present review, we report on our own efforts to unravel the molecular modes of action of phytochemicals in cancer cells and focus on resveratrol, betulinic acid, artesunate, dicentrine and camptothecin derivatives.
Background/Aims: Sphingosine 1-phosphate (S1P) is considered as a key molecule regulating various cell functions including cell growth and death. It is produced by two sphingosine kinases (SK) denoted as SK-1 and SK-2. Whereas SK-1 has been extensively studied and has been appointed a role in promoting cell growth, the function of SK-2 is controversial, and both pro-proliferative and pro-apoptotic functions have been suggested. In this study we investigated whether renal mesangial cells isolated from transgenic mice overexpressing the human Sphk2 gene (hSK2-tg) showed an altered cell response towards growth-inducing and apoptotic stimuli.
Methods: hSK2-tg mice were generated by using a Quick KnockinR strategy. Renal mesangial cells were isolated by a differential sieving method and further cultivated in vitro. Lipids were quantified by mass spectrometry. Protein expression was determined by Western blot analysis, cell proliferation was determined by 3H-thymidine incorporation, and apoptosis was determined by a DNA fragmentation ELISA.
Results: We show here that kidneys and mesangial cells from hSK2-tg mice express the hSK2 as well as the endogenous mouse mSK2. hSK2 and mSK2 predominantly resided in the cytosol of quiescent transgenic cells. However, S1P accumulated strongly in the nucleus and only minimally in the cytosol of transgenic cells. Functionally, hSK2-tg cells proliferated less than control cells under normal growth conditions and were also more sensitive towards stress-induced apoptosis. On the molecular level, this was reflected by reduced ERK and Akt/PKB activation, and upon staurosporine treatment, by a sensitized mitochondrial pathway as manifested by reduced anti-apoptotic Bcl-XL expression and increased cleavage of caspase-9, downstream caspase-3 and PARP-1.
Conclusion: Altogether, these data demonstrate that SK-2 exerts an antiproliferative and apoptosis-sensitizing effect in renal mesangial cells which suggests that selective inhibitors of SK-2 may promote proliferation and reduce apoptosis and this may have impact on the outcome of proliferation-associated diseases such as mesangioproliferative glomerulonephritis.
Der ubiquitäre Redoxregulator Thioredoxin-1 (Trx-1) hat wichtige Funktionen für den zellulären Redoxstatus, Zellwachstum und Apoptose. Reaktive Sauerstoffspezies (ROS) sind beteiligt an der Pathogenese kardiovaskulärer Erkrankungen wie der Atherosklerose und werden zunehmend in ihrer Rolle als intra- und extrazelluläre Signalmoleküle charakterisiert. Ein Ungleichgewicht zwischen der Entstehung von ROS und ihrem Abbau durch antioxidative Systeme führt zu oxidativem Stress, zur Oxidation von Proteinen und letztlich zum Zelltod. Daher wurde in dieser Doktorarbeit untersucht, wie reaktive Sauerstoffspezies Trx-1 in Endothelzellen regulieren, welchen Einfluss dies für die Endothelzellapoptose hat und welche Bedeutung Antioxidantien, Stickstoffmonoxid (NO) und Schubspannung haben. In dieser Arbeit wurde gezeigt, dass H2O2 konzentrationsabhängig die Expression von Trx-1 beeinflusst. Geringe Konzentrationen H2O2 wie 10 und 50 µM induzierten Trx-1-mRNA nach 3 Stunden. Auf Proteinebene fand sich dann nach 6 Stunden eine transiente Hochregulation von Trx-1. Diese geringen Konzentrationen von H2O2 wirkten antiapoptotisch. Dieser antiapoptotische Effekt war von der Trx-1 Proteinexpression abhängig. Im Gegensatz dazu kam es bei hohen Konzentrationen H2O2 zu einer Degradierung von Trx-1. Durch das Antioxidans NAC und NO konnte der Abbau von Trx-1 unter höheren H2O2-Konzentrationen verhindert werden. Untersuchungen zum Mechanismus des Degradierungsprozesses ergaben, dass Trx-1 durch die Aspartatprotease Cathepsin D abgebaut wird. Der protektive Effekt von NO auf die Trx-1 Expression konnte auch im Gewebe eNOS-defizienter Mäuse gezeigt werden, da bereits eNOS-defiziente Mäuse in den Nieren weniger Trx-1 Protein aufwiesen im Vergleich zu Wildtyp-Kontrollmäusen. Bei der Entstehung endothelialer Läsionen und der Stabilität atheromatöser Plaques spielt die Endothelzellapoptose vermutlich eine wichtige Rolle. Trx-1 schützt Endothelzellen vor Apoptose, wird jedoch unter oxidativem Stress abgebaut. Faktoren, die Trx-1 unter oxidativem Stress stabilisieren wie NAC und NO, kommt daher eine besondere Bedeutung für die Endothelzellhomöostase zu.
Background: Resistance to temozolomide (TMZ) greatly limits chemotherapeutic effectiveness in glioblastoma (GBM). Here we analysed the ability of the Inhibitor-of-apoptosis-protein (IAP) antagonist birinapant to enhance treatment responses to TMZ in both commercially available and patient-derived GBM cells.
Methods: Responses to TMZ and birinapant were analysed in a panel of commercial and patient-derived GBM cell lines using colorimetric viability assays, flow cytometry, morphological analysis and protein expression profiling of pro- and antiapoptotic proteins. Responses in vivo were analysed in an orthotopic xenograft GBM model.
Results: Single-agent treatment experiments categorised GBM cells into TMZ-sensitive cells, birinapant-sensitive cells, and cells that were insensitive to either treatment. Combination treatment allowed sensitisation to therapy in only a subset of resistant GBM cells. Cell death analysis identified three principal response patterns: Type A cells that readily activated caspase-8 and cell death in response to TMZ while addition of birinapant further sensitised the cells to TMZ-induced cell death; Type B cells that readily activated caspase-8 and cell death in response to birinapant but did not show further sensitisation with TMZ; and Type C cells that showed no significant cell death or moderately enhanced cell death in the combined treatment paradigm. Furthermore, in vivo, a Type C patient-derived cell line that was TMZ-insensitive in vitro and showed a strong sensitivity to TMZ and TMZ plus birinapant treatments.
Conclusions: Our results demonstrate remarkable differences in responses of patient-derived GBM cells to birinapant single and combination treatments, and suggest that therapeutic responses in vivo may be greatly affected by the tumour microenvironment.
Background: NH exchangers (NHEs) play a crucial role in regulating intra/extracellular pH, which is altered in cancer cells, and are therefore suitable targets to alter cancer cell metabolism in order to inhibit cell survival and proliferation. Among NHE inhibitors, amiloride family members are commonly used in clinical practice as diuretics; we focused on the amiloride HMA, reporting a net cytotoxic effect on a panel of human cancer cell lines; now we aim to provide new insights into the molecular events leading to cell death by HMA.
Methods: Colon cancer cell lines were treated with HMA and analysed with: morphological and cellular assays for cell viability and death, and autophagy; biochemical approaches to evaluate mitochondrial function and ROS production; in situ detection of DNA damage; molecular tools to silence crucial autophagy/necroptosis factors.
Results: HMA affects cellular morphology, alters mitochondrial structure and function, causes an increase in ROS, which is detrimental to DNA integrity, stimulates poly(ADP-ribose) synthesis, activates RIPK3-dependent death and triggers autophagy, which is unable to rescue cell survival. These features are hot points of an intricate network of processes, including necroptosis and autophagy, regulating the homeostasis between survival and death.
Conclusion: Our results allow the identification of multiple events leading to cell death in cancer cells treated with HMA. The here-defined intricate network activated by HMA could be instrumental to selectively target the key players of each pathway in the attempt to improve the global response to HMA. Our data could be the starting point for developing a newly designed targeted therapy.
Ligand stimulation of CD95 induces activation of Plk3 followed by phosphorylation of caspase-8
(2016)
Upon interaction of the CD95 receptor with its ligand, sequential association of the adaptor molecule FADD (MORT1), pro-forms of caspases-8/10, and the caspase-8/10 regulator c-FLIP leads to the formation of a death-inducing signaling complex. Here, we identify polo-like kinase (Plk) 3 as a new interaction partner of the death receptor CD95. The enzymatic activity of Plk3 increases following interaction of the CD95 receptor with its ligand. Knockout (KO) or knockdown of caspase-8, CD95 or FADD prevents activation of Plk3 upon CD95 stimulation, suggesting a requirement of a functional DISC for Plk3 activation. Furthermore, we identify caspase-8 as a new substrate for Plk3. Phosphorylation occurs on T273 and results in stimulation of caspase-8 proapoptotic function. Stimulation of CD95 in cells expressing a non-phosphorylatable caspase-8-T273A mutant in a rescue experiment or in Plk3-KO cells generated by CRISPR/Cas9 reduces the processing of caspase-8 prominently. Low T273 phosphorylation correlates significantly with low Plk3 expression in a cohort of 95 anal tumor patients. Our data suggest a novel mechanism of kinase activation within the Plk family and propose a new model for the stimulation of the extrinsic death pathway in tumors with high Plk3 expression.